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FCC Interference Statement for Class B EVM devices

This equipment has been tested and found to comply with the limits for a Class B digital device, pursuant to part 15 of the FCC Rules.
These limits are designed to provide reasonable protection against harmful interference in a residential installation. This equipment
generates, uses and can radiate radio frequency energy and, if not installed and used in accordance with the instructions, may cause
harmful interference to radio communications. However, there is no guarantee that interference will not occur in a particular installation. If
this equipment does cause harmful interference to radio or television reception, which can be determined by turning the equipment off and
on, the user is encouraged to try to correct the interference by one or more of the following measures:

• Reorient or relocate the receiving antenna.

• Increase the separation between the equipment and receiver.

• Connect the equipment into an outlet on a circuit different from that to which the receiver is connected.

• Consult the dealer or an experienced radio/TV technician for help.

For EVMs annotated as IC – INDUSTRY CANADA Compliant

This Class A or B digital apparatus complies with Canadian ICES-003.

Changes or modifications not expressly approved by the party responsible for compliance could void the user’s authority to operate the
equipment.

Concerning EVMs including radio transmitters

This device complies with Industry Canada licence-exempt RSS standard(s). Operation is subject to the following two conditions: (1) this
device may not cause interference, and (2) this device must accept any interference, including interference that may cause undesired
operation of the device.

Concerning EVMs including detachable antennas

Under Industry Canada regulations, this radio transmitter may only operate using an antenna of a type and maximum (or lesser) gain
approved for the transmitter by Industry Canada. To reduce potential radio interference to other users, the antenna type and its gain should
be so chosen that the equivalent isotropically radiated power (e.i.r.p.) is not more than that necessary for successful communication.

This radio transmitter has been approved by Industry Canada to operate with the antenna types listed in the user guide with the maximum
permissible gain and required antenna impedance for each antenna type indicated. Antenna types not included in this list, having a gain
greater than the maximum gain indicated for that type, are strictly prohibited for use with this device.

Cet appareil numérique de la classe A ou B est conforme à la norme NMB-003 du Canada.

Les changements ou les modifications pas expressément approuvés par la partie responsable de la conformité ont pu vider l’autorité de
l'utilisateur pour actionner l'équipement.

Concernant les EVMs avec appareils radio

Le présent appareil est conforme aux CNR d'Industrie Canada applicables aux appareils radio exempts de licence. L'exploitation est
autorisée aux deux conditions suivantes : (1) l'appareil ne doit pas produire de brouillage, et (2) l'utilisateur de l'appareil doit accepter tout
brouillage radioélectrique subi, même si le brouillage est susceptible d'en compromettre le fonctionnement.

Concernant les EVMs avec antennes détachables

Conformément à la réglementation d'Industrie Canada, le présent émetteur radio peut fonctionner avec une antenne d'un type et d'un gain
maximal (ou inférieur) approuvé pour l'émetteur par Industrie Canada. Dans le but de réduire les risques de brouillage radioélectrique à
l'intention des autres utilisateurs, il faut choisir le type d'antenne et son gain de sorte que la puissance isotrope rayonnée équivalente
(p.i.r.e.) ne dépasse pas l'intensité nécessaire à l'établissement d'une communication satisfaisante.

Le présent émetteur radio a été approuvé par Industrie Canada pour fonctionner avec les types d'antenne énumérés dans le manuel
d’usage et ayant un gain admissible maximal et l'impédance requise pour chaque type d'antenne. Les types d'antenne non inclus dans
cette liste, ou dont le gain est supérieur au gain maximal indiqué, sont strictement interdits pour l'exploitation de l'émetteur.

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Summary of Contents for TPS53319EVM-136

Page 1: ...oad Regulation and Efficiency Measurement Procedure 8 6 2 Control Loop Gain and Phase Measurement Procedure 8 6 3 List of Test Points 8 6 4 Equipment Shutdown 9 7 Performance Data and Typical Characteristic Curves 9 7 1 Efficiency 9 7 2 Load Regulation 10 7 3 Line Regulation 10 7 4 Enable Turn on Turn off 11 7 5 Output Ripple 11 7 6 Switching Node 12 7 7 Output Transient with Auto skip mode 12 7 8...

Page 2: ...er Assembly Drawing 16 20 TPS53319EVM 136 Bottom Assembly Drawing 17 21 TPS53319EVM 136 Top Copper 18 22 TPS53319EVM 136 Layer 2 Copper 19 23 TPS53319EVM 136 Layer 3 Copper 20 24 TPS53319EVM 136 Layer 4 Copper 21 25 TPS53319EVM 136 Layer 5 Copper 22 26 TPS53319EVM 136 Bottom Layer Copper 23 List of Tables 1 TPS53319EVM 136 Electrical Performance Specifications 3 2 Switching Frequency Selection 7 3...

Page 3: ...Table 1 TPS53319EVM 136 Electrical Performance Specifications 1 PARAMETER TEST CONDITIONS MIN TYP MAX UNITS INPUT CHARACTERISTICS Voltage range VIN 8 12 20 V Maximum input current VIN 8V Io 14 A 2 874 A No load input current Vin 20V Io 0A with auto skip mode 0 7 mA OUTPUT CHARACTERISTICS Output voltage VOUT 1 5 V Output voltage regulation Line regulation Vin 8V 20V 0 1 Load regulation Vin 12V Io 0...

Page 4: ...ww ti com 3 Schematic Figure 1 TPS53319EVM 136 Schematic 4 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 5: ... resolution 20mV division vertical resolution Test points TP2 and TP11 can be used to measure the output ripple voltage by placing the oscilloscope probe tip through TP2 and holding the ground barrel on TP11 as shown in Figure 2 Using a leaded ground connection may induce additional noise due to the large ground loop Figure 2 Tip and Barrel Measurement for Vout Ripple Recommended Wire Gauge 1 VIN ...

Page 6: ... as shown in Figure 3 2 Connect a voltmeter V1 at TP1 Vin and TP10 GND to measure the input voltage 3 Connect a current meter A1 to measure the input current Output Connections 1 Connect Load to J2 and set Load to constant resistance mode to sink 0Adc before Vin is applied 2 Connect a voltmeter V2 at TP2 Vout and TP11 GND to measure the output voltage 5 Configurations All Jumper selections should ...

Page 7: ...op 1 2 pin shorted 39 2k 0 7 2nd 3 4 pin shorted 100k 1 4 3rd 5 6 pin shorted 200k 2 8 Bottom 7 8 pin shorted 475k 5 6 5 3 Mode Selection The MODE can be set by J5 Default setting Auto Skip Table 4 MODE Selection Jumper set to MODE Selection Top 1 2 pin shorted Auto Skip Bottom 3 4 pin shorted Forced CCM 5 4 Enable Selection The controller can be enabled and disabled by J6 Default setting Jumper s...

Page 8: ...nect isolation transformer to test points marked TP6 and TP7 3 Connect input signal amplitude measurement probe channel A to TP6 Connect output signal amplitude measurement probe channel B to TP7 4 Connect ground lead of channel A and channel B to TP9 5 Inject around 20mV or less signal through the isolation transformer 6 Sweep the frequency from 100Hz to 1MHz with 10Hz or lower post filter The co...

Page 9: ...erformance Data and Typical Characteristic Curves Figure 4 through Figure 18 present typical performance curves for TPS53319EVM 136 7 1 Efficiency Figure 4 Efficiency 9 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 10: ...w ti com 7 2 Load Regulation Figure 5 Load Regulation 7 3 Line Regulation Figure 6 Line Regulation 10 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 11: ...nable Turn on Turn off Figure 7 Enable Turn on Figure 8 Enable Turn off 7 5 Output Ripple Figure 9 Output Ripple 11 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 12: ...tching Node 7 7 Output Transient with Auto skip mode Figure 11 Output Transient from DCM to CCM Figure 12 Output Transient from CCM to DCM 12 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 13: ...put Transient with FCCM mode 7 9 Output 0 75V Pre bias Turn on Figure 14 Output 0 75V Pre bias Turn on 7 10 Output Over Current and Short Circuit Protection 13 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 14: ...ut Over Current Protection Figure 16 Output Over Voltage Protection 7 11 Bode plot Figure 17 Bode plot at 12Vin 1 5V 14A 14 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 15: ...tic Curves 7 12 Thermal Image Figure 18 Top Board at 12Vin 1 5V 14A 25deg C amb without airflow 15 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 16: ...how the design of the TPS53319EVM 136 printed circuit board The EVM has been designed using a 6 Layer 2 oz copper circuit board Figure 19 TPS53319EVM 136 Top Layer Assembly Drawing 16 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 17: ...awing and PCB Layout Figure 20 TPS53319EVM 136 Bottom Assembly Drawing 17 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 18: ...g and PCB Layout www ti com Figure 21 TPS53319EVM 136 Top Copper 18 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 19: ...ly Drawing and PCB Layout Figure 22 TPS53319EVM 136 Layer 2 Copper 19 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 20: ...and PCB Layout www ti com Figure 23 TPS53319EVM 136 Layer 3 Copper 20 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 21: ...ly Drawing and PCB Layout Figure 24 TPS53319EVM 136 Layer 4 Copper 21 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 22: ...and PCB Layout www ti com Figure 25 TPS53319EVM 136 Layer 5 Copper 22 High Efficiency 14A Synchronous Buck Converter with Eco Mode SLVU728 May 2012 Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 23: ...Drawing and PCB Layout Figure 26 TPS53319EVM 136 Bottom Layer Copper 23 SLVU728 May 2012 High Efficiency 14A Synchronous Buck Converter with Eco Mode Submit Documentation Feedback Copyright 2012 Texas Instruments Incorporated ...

Page 24: ...ip 14 7k 1 16W 1 0603 STD STD 1 R11 Resistor Chip 10 1 16W 1 0603 STD STD 1 R13 Resistor Chip 187k 1 16W 1 0603 STD STD 1 R14 Resistor Chip 619k 1 16W 1 0603 STD STD 1 R16 Resistor Chip 866k 1 16W 1 0603 STD STD 1 R17 Resistor Chip 309k 1 16W 1 0603 STD STD 1 R18 Resistor Chip 124k 1 16W 1 0603 STD STD 1 R19 Resistor Chip 39 2k 1 16W 1 0603 STD STD 1 R2 Resistor Chip 169k 1 16W 1 0603 STD STD 1 R2...

Page 25: ...ency energy and has not been tested for compliance with the limits of computing devices pursuant to part 15 of FCC or ICES 003 rules which are designed to provide reasonable protection against radio frequency interference Operation of the equipment may cause interference with radio communications in which case the user at his own expense will be required to take whatever measures may be required t...

Page 26: ... its gain should be so chosen that the equivalent isotropically radiated power e i r p is not more than that necessary for successful communication This radio transmitter has been approved by Industry Canada to operate with the antenna types listed in the user guide with the maximum permissible gain and required antenna impedance for each antenna type indicated Antenna types not included in this l...

Page 27: ...er you obtained the Technical Regulations Conformity Certification as provided in Radio Law of Japan with respect to this product Also please do not transfer this product unless you give the same notice above to the transferee Please note that if you could not follow the instructions above you will be subject to penalties of Radio Law of Japan Texas Instruments Japan Limited address 24 1 Nishi Shi...

Page 28: ... property damage personal injury or death If there are questions concerning these ratings please contact a TI field representative prior to connecting interface electronics including input power and intended loads Any loads applied outside of the specified output range may result in unintended and or inaccurate operation and or possible permanent damage to the EVM and or interface electronics Plea...

Page 29: ...ency energy and has not been tested for compliance with the limits of computing devices pursuant to part 15 of FCC or ICES 003 rules which are designed to provide reasonable protection against radio frequency interference Operation of the equipment may cause interference with radio communications in which case the user at his own expense will be required to take whatever measures may be required t...

Page 30: ... its gain should be so chosen that the equivalent isotropically radiated power e i r p is not more than that necessary for successful communication This radio transmitter has been approved by Industry Canada to operate with the antenna types listed in the user guide with the maximum permissible gain and required antenna impedance for each antenna type indicated Antenna types not included in this l...

Page 31: ...er you obtained the Technical Regulations Conformity Certification as provided in Radio Law of Japan with respect to this product Also please do not transfer this product unless you give the same notice above to the transferee Please note that if you could not follow the instructions above you will be subject to penalties of Radio Law of Japan Texas Instruments Japan Limited address 24 1 Nishi Shi...

Page 32: ... property damage personal injury or death If there are questions concerning these ratings please contact a TI field representative prior to connecting interface electronics including input power and intended loads Any loads applied outside of the specified output range may result in unintended and or inaccurate operation and or possible permanent damage to the EVM and or interface electronics Plea...

Page 33: ...regulatory and safety related requirements concerning its products and any use of TI components in its applications notwithstanding any applications related information or support that may be provided by TI Buyer represents and agrees that it has all the necessary expertise to create and implement safeguards which anticipate dangerous consequences of failures monitor failures and their consequence...

Page 34: ...Mouser Electronics Authorized Distributor Click to View Pricing Inventory Delivery Lifecycle Information Texas Instruments TPS53319EVM 136 ...

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